s-三嗪类除草剂的细菌分解代谢:生物化学、进化与应用。

2区 生物学 Q1 Biochemistry, Genetics and Molecular Biology
Advances in Microbial Physiology Pub Date : 2020-01-01 Epub Date: 2020-02-11 DOI:10.1016/bs.ampbs.2020.01.004
Lygie Esquirol, Thomas S Peat, Elena Sugrue, Sahil Balotra, Sarah Rottet, Andrew C Warden, Matthew Wilding, Carol J Hartley, Colin J Jackson, Janet Newman, Colin Scott
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引用次数: 5

摘要

合成的s-三嗪是一种丰富的富氮杂芳香化合物,广泛应用于除草剂、塑料和聚合物以及炸药等领域。它们在环境中的存在导致了细菌分解代谢途径的进化,允许使用这些人为化学物质作为支持生长的氮源。除草剂s-三嗪自20世纪中期开始使用,是世界上使用最广泛的除草剂之一,尽管由于担心其安全性和对环境的影响,在某些地区已停止使用。细菌对除草剂s-三嗪的分解代谢进行了广泛的研究。假单胞菌属菌株ADP是在s-三嗪类除草剂问世30多年后才被分离出来的,是大多数此类研究的模型系统;然而,几种替代的分解代谢途径也已被确定。在过去的五年中,通过获取s-三嗪分解代谢酶的原子结构,揭示了其分子作用模式的相当详细的信息。这些结构研究也揭示了这种新获得的代谢能力的进化起源。此外,s-三嗪分解细菌和酶已被广泛应用,包括除草剂和氰尿酸的生物修复,向植物引入代谢抗性,以及在发酵生物中作为一种新的选择标记。在这篇综述中,我们介绍了s-三嗪的菌株、代谢途径和酶的发现和表征。我们还考虑了这些新酶和途径的进化,并讨论了这些细菌和酶的实际应用。摘要:对细菌除草剂分解代谢酶及其途径的详细了解提供了新的进化见解和新的应用工具。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Bacterial catabolism of s-triazine herbicides: biochemistry, evolution and application.

The synthetic s-triazines are abundant, nitrogen-rich, heteroaromatic compounds used in a multitude of applications including, herbicides, plastics and polymers, and explosives. Their presence in the environment has led to the evolution of bacterial catabolic pathways in bacteria that allow use of these anthropogenic chemicals as a nitrogen source that supports growth. Herbicidal s-triazines have been used since the mid-twentieth century and are among the most heavily used herbicides in the world, despite being withdrawn from use in some areas due to concern about their safety and environmental impact. Bacterial catabolism of the herbicidal s-triazines has been studied extensively. Pseudomonas sp. strain ADP, which was isolated more than thirty years after the introduction of the s-triazine herbicides, has been the model system for most of these studies; however, several alternative catabolic pathways have also been identified. Over the last five years, considerable detail about the molecular mode of action of the s-triazine catabolic enzymes has been uncovered through acquisition of their atomic structures. These structural studies have also revealed insights into the evolutionary origins of this newly acquired metabolic capability. In addition, s-triazine-catabolizing bacteria and enzymes have been used in a range of applications, including bioremediation of herbicides and cyanuric acid, introducing metabolic resistance to plants, and as a novel selectable marker in fermentation organisms. In this review, we cover the discovery and characterization of bacterial strains, metabolic pathways and enzymes that catabolize the s-triazines. We also consider the evolution of these new enzymes and pathways and discuss the practical applications that have been considered for these bacteria and enzymes. One Sentence Summary: A detailed understanding of bacterial herbicide catabolic enzymes and pathways offer new evolutionary insights and novel applied tools.

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来源期刊
Advances in Microbial Physiology
Advances in Microbial Physiology 生物-生化与分子生物学
CiteScore
6.20
自引率
0.00%
发文量
16
期刊介绍: Advances in Microbial Physiology publishes topical and important reviews, interpreting physiology to include all material that contributes to our understanding of how microorganisms and their component parts work. First published in 1967, the editors have always striven to interpret microbial physiology in the broadest context and have never restricted the contents to traditional views of whole cell physiology.
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